Wang Xue-Ying, Pei Ying, Xie Min, Jin Zi-He, Xiao Ya-Shi, Wang Yang, Zhang Li-Na, Li Yan, Huang Wei-Hua
Key Laboratory of Analytical Chemistry for Biology and Medicine (Ministry of Education), College of Chemistry and Molecular Sciences, Wuhan University, Wuhan, 430072, China.
Lab Chip. 2015 Feb 21;15(4):1178-87. doi: 10.1039/c4lc00973h.
Reproducing a tumor microenvironment consisting of blood vessels and tumor cells for modeling tumor invasion in vitro is particularly challenging. Here, we report an artificial blood vessel implanted 3D microfluidic system for reproducing transvascular migration of tumor cells. The transparent, porous and elastic artificial blood vessels are obtained by constructing polysaccharide cellulose-based microtubes using a chitosan sacrificial template, and possess excellent cytocompatibility, permeability, and mechanical characteristics. The artificial blood vessels are then fully implanted into the collagen matrix to reconstruct the 3D microsystem for modeling transvascular migration of tumor cells. Well-defined simulated vascular lumens were obtained by proliferation of the human umbilical vein endothelial cells (HUVECs) lining the artificial blood vessels, which enables us to reproduce structures and functions of blood vessels and replicate various hemodynamic parameters. Based on this model, the adhesion and transvascular migration of tumor cells across the artificial blood vessel have been well reproduced.
在体外重现由血管和肿瘤细胞组成的肿瘤微环境以模拟肿瘤侵袭极具挑战性。在此,我们报告一种用于重现肿瘤细胞跨血管迁移的植入人工血管的三维微流控系统。透明、多孔且有弹性的人工血管是通过使用壳聚糖牺牲模板构建基于多糖纤维素的微管获得的,具有优异的细胞相容性、渗透性和机械特性。然后将人工血管完全植入胶原基质中以重建用于模拟肿瘤细胞跨血管迁移的三维微系统。通过在人工血管内衬的人脐静脉内皮细胞(HUVECs)增殖获得了明确界定的模拟血管腔,这使我们能够重现血管的结构和功能并复制各种血流动力学参数。基于该模型,肿瘤细胞跨人工血管的黏附及跨血管迁移已得到很好的重现。